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A simplified adaptive neuro-fuzzy inference system (ANFIS) controller trained by genetic algorithm to control nonlinear multi-input multi-output systems

机译:遗传算法训练的简化自适应神经模糊推理系统(ANFIS)控制器,用于控制非线性多输入多输出系统

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This paper presents a simplified adaptive neuro-fuzzy inference system (ANFIS) controller to control nonlinear multi-input multi-output (MIMO) systems. This controller uses only few rules to provide the control actions, instead of the full combination of all possible rules. Consequently, the proposed controller possesses several advantages over the conventional ANFIS controller especially the reduction in execution time, and hence, it is more appropriate for real time control. A real-coded genetic algorithm (GA) was utilized to optimize the premise and the consequent parameters of the ANFIS controller, instead of the hybrid learning methods that are widely used in the literature. Accordingly, the necessity for the teaching signal required by other optimization techniques has been eliminated. Furthermore, the GA was employed to determine the input and output scaling factors for this controller, instead of the widely used trial and error method. Two nonlinear MIMO systems were chosen to be controlled by this controller. In addition, the controller robustness to output disturbances was also investigated and the results clearly showed the notable accuracy and the generalization ability of this controller. Moreover, the result of a comparative study with a conventional MIMO ANFIS controller has indicated the superiority of the simplified MIMO ANFIS controller.
机译:本文提出了一种简化的自适应神经模糊推理系统(ANFIS)控制器,用于控制非线性多输入多输出(MIMO)系统。该控制器仅使用很少的规则来提供控制动作,而不是使用所有可能规则的完整组合。因此,所提出的控制器具有优于常规ANFIS控制器的多个优点,尤其是减少了执行时间,因此,它更适合于实时控制。利用实数编码遗传算法(GA)来优化ANFIS控制器的前提和相应参数,而不是文献中广泛使用的混合学习方法。因此,已经消除了其他优化技术所需的示教信号的必要性。此外,GA被用来确定该控制器的输入和输出比例因子,而不是广泛使用的反复试验方法。选择了两个非线性MIMO系统来由该控制器进行控制。另外,还研究了控制器对输出扰动的鲁棒性,结果清楚地表明了该控制器的显着精度和泛化能力。此外,与常规MIMO ANFIS控制器进行比较研究的结果表明,简化的MIMO ANFIS控制器具有优越性。

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